INTRALUMINAL MEDICAL SYSTEM WITH OVERLOADED CONNECTORS
Medical devices, systems and methods are provided. In one embodiments, an intraluminal medical system includes a patient interface module (PIM) configured to selectively communicate with a first intraluminal device or a second intraluminal device different than the first intraluminal device. The first and second intraluminal devices are configured to obtain medical data associated with a body lumen of a patient while positioned within the body lumen. The PIM includes a first connector having a first plurality of pins respectively carrying a plurality of signals. The first intraluminal device includes a second connector configured to engage the first connector and the second intraluminal device includes a third connector configured to engage the first connector. The plurality of signals respectively carried by the first plurality of pins is configured to selectively allow electrical communication between the PIM and the first intraluminal device when the second connector engages the first connector, and between the PIM and the second intraluminal device when the third connector engages the first connector.
This application is a continuation of U.S. application Ser. No. 16/756,406, filed on Apr. 15, 2020, which is the U.S. National Phase application under 35 U.S.C. § 371 of International Application No. PCT/EP2018/078791, filed on Oct. 19, 2018, which claims the benefit of U.S. Provisional Patent Application No. 62/574,835, filed on Oct. 20, 2017. These applications are hereby incorporated by reference herein.
TECHNICAL FIELDThe present disclosure relates generally to patient interface modules (PIM) of intraluminal medical systems and, in particular, to PIMs that are compatible with the overloaded connectors. For example, the PIM of the present disclosure can electrically communicate with one of several different types of intraluminal devices and configure the intraluminal medical system based on the type of intraluminal device in communication with the PIM.
BACKGROUNDCatheters are widely used as diagnostic tools for assessing a diseased vessel, such as an artery, within the human body to determine the need for treatment, to guide the intervention, and/or to assess its effectiveness. Catheter come equipped with different types of sensors, such as ultrasound transducers, optical sensors, flow rate sensors, pressure sensors and photoacoustic sensors. Conventionally, catheters with different sensor types can have different connectors that go with different patient interface modules (PIM). Ultrasound catheters operating at different center frequencies traditionally share connectors of identical dimensions. However, due to the difference in the number of pins and the power outputs, ultrasound catheters operating at different center frequencies are connected to different PIMs. As a result, using different types of catheters in a catheter lab involves use of multiplicity of connectors and multiplicity of PIMs, complicating the workflow, increasing the cost, and increasing the number of failure points.
SUMMARYEmbodiments of the present disclosure provide an intraluminal medical system that includes a patient interface module (PIM) that can selectively communicate with a different intraluminal devices (e.g., catheters, guidewires, etc.) with different types of sensors. The PIM connects to the different intraluminal devices using a single PIM connector. The PIM connectors include multiple pins that carry different electrical signals (e.g., ground, power, signal, data, etc.). The multiple pins are arranged such that the PIM can communicate with the different intraluminal devices when the different intraluminal devices are respectively connected to the single PIM connector.
In one embodiments, an intraluminal medical system includes a patient interface module (PIM) configured to selectively communicate with a first intraluminal device or a second intraluminal device different than the first intraluminal device. The first and second intraluminal devices are configured to obtain medical data associated with a body lumen of a patient while positioned within the body lumen. The PIM includes a first connector having a first plurality of pins respectively carrying a plurality of signals. The first intraluminal device includes a second connector configured to engage the first connector and the second intraluminal device includes a third connector configured to engage the first connector. The plurality of signals respectively carried by the first plurality of pins is configured to selectively allow electrical communication between the PIM and the first intraluminal device when the second connector engages the first connector, and between the PIM and the second intraluminal device when the third connector engages the first connector.
In some embodiments, the intraluminal medical system further includes the first intraluminal device and the second intraluminal device. In some embodiments, the first intraluminal device includes a first type of ultrasound transducers and the second intraluminal device includes a second type of ultrasound transducers. The first type of ultrasound transducers is different from the second type of ultrasound transducers. In some embodiments, the first intraluminal device includes ultrasound transducers with a first center frequency, and the second intraluminal device includes ultrasound transducers with a second center frequency different from the first center frequency. In some implementations, the second connector includes a first pin configuration and the third connector includes a second pin configuration different from the first pin configuration. In some implementations, when the second connector engages the first connector, a first subset of the first plurality of pins are open; and when the third connector engages the first connector, a second subset of the first plurality of pins are open. The first subset is different from the second subset. In some embodiments, when the second connector engages the first connector, the plurality of signals experiences a first change; and when the third connector engages the first connector, the plurality of signals experience a second change. In these embodiments, the PIM is operable to detect the first change, thereby identifying the first intraluminal device. In addition, in these embodiments, the PIM is operable to detect the second change, thereby identifying the second intraluminal device.
In some embodiments, when first intraluminal device is identified, the PIM is operable to configure itself and the intraluminal medical system based on attributes of the first intraluminal device. In some embodiments, when second intraluminal device is identified, the PIM is operable to configure itself and the intraluminal medical system based on attributes of the second intraluminal device. In some implementations, the second connector includes a second plurality of pins and the third connector includes a third plurality of pins. At least one of the second plurality of pins is connected to a first electrically erasable programmable read-only memory (EEPROM) storing first data. At least one of the third plurality of pins is connected to a second EEPROM storing second data different from the first data. In these implementations, the PIM is operable to read the first data, thereby identifying the first intraluminal device, and the PIM is further operable to read the second data, thereby identifying the second intraluminal device. In some embodiments, when first intraluminal device is identified, the PIM is operable to configure itself and the intraluminal medical system based on attributes of the first intraluminal device. In some embodiments, when second intraluminal device is identified, wherein the PIM is operable to configure itself and the intraluminal medical system based on attributes of the second intraluminal device.
In another embodiment, a method for selectively establishing communication between a patient interface module (PIM) and different intraluminal devices is provided. The method includes identifying, by use of the PIM, a first intraluminal device by detecting a first change in signals carried by a first connector of the PIM, when a second connector of the first intraluminal device engages the first connector; and identifying, by use of the PIM, a second intraluminal device by detecting a second change in signals carried by the first connector of the PIM, when a third connector of the second intraluminal device engages the first connector. In this embodiments, the first and second intraluminal devices are configured to obtain medical data associated with a body lumen of a patient while positioned within the body lumen. The second connector includes a first pin configuration and the third connector includes a second pin configuration different from the first pin configuration. In some implementations, the method further includes configuring the PIM based on attributes of the first intraluminal device when first intraluminal device is identified and configuring PIM based on attributes of the second intraluminal device when second intraluminal device is identified. In some implementations, the PIM is in communication with a console. In some embodiments, the method further includes configuring the PIM and the console based on attributes of the first intraluminal device when first intraluminal device is identified, and configuring the PIM and the console based on attributes of the second intraluminal device when second intraluminal device is identified. In some embodiments, the first and second changes include a change in impedance, a change in current output, or a change due to reading of data stored on a memory of the first or second intraluminal device.
Additional aspects, features, and advantages of the present disclosure will become apparent from the following detailed description.
Illustrative embodiments of the present disclosure will be described with reference to the accompanying drawings, of which:
For the purposes of promoting an understanding of the principles of the present disclosure, reference will now be made to the embodiments illustrated in the drawings, and specific language will be used to describe the same. It is nevertheless understood that no limitation to the scope of the disclosure is intended. Any alterations and further modifications to the described devices, systems, and methods, and any further application of the principles of the present disclosure are fully contemplated and included within the present disclosure as would normally occur to one skilled in the art to which the disclosure relates. In particular, it is fully contemplated that the features, components, and/or steps described with respect to one embodiment may be combined with the features, components, and/or steps described with respect to other embodiments of the present disclosure. For the sake of brevity, however, the numerous iterations of these combinations will not be described separately.
Referring now to
The intraluminal devices 203-1, 203-2 and 203-N include a flexible elongate member sized and shaped, structurally arranged, and/or otherwise configured to be positioned within anatomy of a patient. One or more sensing components can be positioned at the distal portion of the flexible elongate member. Generally, intraluminal devices 203-1, 203-2 and 203-N can be guidewires, catheters, guide catheters, and/or combinations thereof. One or more of the intraluminal devices 203-1, 203-2 and 203-N can be a rotational IVUS imaging device including a rotating drive cable that rotates one or more ultrasound transducers at the distal portion of the flexible elongate member. One or more of the intraluminal devices 203-1, 203-2 and 203-N can be a phased array IVUS imaging device including a circumferential/annular transducer array around a longitudinal axis. In other embodiments, the sensing component of the intraluminal devices 203-1, 203-2 and 203-N can be configured for imaging, such as near infrared (NIR) imaging, optical coherence tomography (OCT), intravascular photoacoustic (IVPA) imaging, transesophageal echocardiography (TEE), and intracardiac echocardiography (ICE). In some embodiments, one or more of the intraluminal devices 203-1, 203-2 and 203-N can include any suitable sensing component, including a pressure sensor, a flow sensor, a temperature sensor, an optical fiber, a reflector, a mirror, a prism, an ablation element, a radio frequency (RF) electrode, a conductor, and/or combinations thereof.
While IVUS catheters operating at different center frequencies and IVUS catheter with different ultrasound transducers all include ultrasound transducers, these IVUS catheters are considered different of intraluminal devices or having different types of ultrasound transducers. As used herein, N stands for an integer, representing the number of different types of intraluminal devices that can be compatible with the PIM 202. The first intraluminal device 203-1 includes a first device connector 206-1, the second intraluminal device 203-2 includes a second device connector 206-2 and the Nth intraluminal device 203-N includes an Nth device connector 206-N. For the case of reference, the first, second and Nth device connectors may be referred to individually as device connector 206-1, device connector 206-2 and device connector 206-N or together as device connectors 206. Each of device connectors 206 is compatible with the PIM connector 204 and can engage PIM connector 204 to establish electrical communication between the respective intraluminal device and the PIM 202. In some embodiments, the device connectors 206-1, 206-2 and 206-N can include protrusions, recessions, or other structural or mechanical features that can match corresponding features on the PIM connector 204 for secured and reliable connection. As will be further described below in conjunction with
The body lumen, as used herein, can be a vessel, such as a blood vessel. In various embodiments, the body lumen is an artery or a vein of a patient's vascular system, including cardiac vasculature, peripheral vasculature, neural vasculature, renal vasculature, and/or any other suitable anatomy/lumen inside the body. The body lumen can be tortuous in some instances. For example, the first, second and Nth intraluminal devices 203-1, 203-2 and 203-N may be used to examine any number of anatomical locations and tissue types, including without limitation, organs including the liver, heart, kidneys, gall bladder, pancreas, lungs, esophagus; ducts; intestines; nervous system structures including the brain, dural sac, spinal cord and peripheral nerves; the urinary tract; as well as valves within the blood, chambers or other parts of the heart, and/or other systems of the body. In addition to natural structures, the first, second and Nth intraluminal devices 203-1, 203-2 and 203-N may be used to examine man-made structures such as, but without limitation, heart valves, stents, shunts, filters and other devices.
The console 201 can include a processing circuit, such as one or more processors in communication with memory. The console 201 can receive, process, and generate a graphical representation of the intraluminal data obtained by the intraluminal devices 203-1, 203-2, 203-N. The console 201 can transmit the graphical representation of the intraluminal data to a display for display to a user. The console 201 can include a user input device to allow a user to control operation of the intraluminal devices 203-1, 203-2, 203-N. The console 201 can transmit control signals to the intraluminal devices 203-1, 203-2, 203-N, e.g., based on received user input.
The intraluminal medical system 200 of the present disclosure provides several advantages over the conventional design. By using a single PIM to connect to different types of intraluminal devices via a single type of standardized connector pairs (i.e. a PIM connector and a compatible device connect being a pair), the workflow becomes simpler and more streamlined, the number of PIMs and connecting cables are reduced, equipment cost is lowered, procedural robustness and reliability are increased, and the number of failure points are reduced. As the PIM connector 204 can engage up to N device connectors 206 to selectively establish electrical communication between the PIM 202 and one of the intraluminal devices 203, the PIM connector 204 can be referred to as an overloaded connector with overloaded functions.
The PIM 202 can comprise a housing having any suitable shape. The PIM 202 can include a volume (e.g., a length, a width, a depth, a radius, etc.) within the housing configured to accommodate one or more components described herein. For example, the connector 204 can be mechanically coupled to the housing of the PIM 202. The PIM 202 can be sized and shaped, structurally arranged, and/or otherwise configured for handheld use in some embodiments.
In some embodiments, the intraluminal medical system 200 and/or the PIM 202 can include features similar to those described in U.S. Patent Application No. 62/574,455, titled “DIGITAL ROTATIONAL PATIENT INTERFACE MODULE,” filed Oct. 19, 2017, U.S. Patent Application No. 62/574,655, titled “WIRELESS DIGITAL PATIENT INTERFACE MODULE USING WIRELESS CHARGING,” filed Oct. 19, 2017, U.S. Patent Application No. 62/574,687, titled “INTRALUMINAL DEVICE REUSE PREVENTION WITH PATIENT INTERFACE MODULE AND ASSOCIATED DEVICES, SYSTEMS, AND METHODS,” filed Oct. 19, 2017, and U.S. Patent Application No. 62/574,610, titled “HANDHELD MEDICAL INTERFACE FOR INTRALUMINAL DEVICE AND ASSOCIATED DEVICES, SYSTEMS, AND METHODS,” filed Oct. 19, 2017, each of which is incorporated by reference in its entirety.
As described above in conjunction with
In some embodiments, the PIM, such as the PIM 202 in
After the PIM, such as the PIM 202 in
Referring now to
For case of reference, the embodiments directed to identification of intraluminal devices by detection of changes in impedance and current output, as described in conjunction with
Persons skilled in the art will recognize that the apparatus, systems, and methods described above can be modified in various ways. While in the present disclosure it is referred primarily to intraluminal medical devices in general and intraluminal ultrasound devices in exemplary embodiments, in alternative embodiments at least one of the intraluminal medical device is an intraluminal sensing device configured to provide physiological measurements (e.g. pressure, flow velocity) within the lumen of the body. Additionally or alternatively, in an embodiment the medical devices may comprise at least one extracorporeal imaging device (e.g. ultrasound) and/or extracorporeal sensing device (e.g. electrocardiogram) besides intraluminal medical devices. The alternative embodiments have the same benefits as already mentioned in the detailed description of the intraluminal medical system 200. Accordingly, persons of ordinary skill in the art will appreciate that the embodiments encompassed by the present disclosure are not limited to the particular exemplary embodiments described above. In that regard, although illustrative embodiments have been shown and described, a wide range of modification, change, and substitution is contemplated in the foregoing disclosure. It is understood that such variations may be made to the foregoing without departing from the scope of the present disclosure. Accordingly, it is appropriate that the appended claims be construed broadly and in a manner consistent with the present disclosure.
Claims
1. A medical system, comprising:
- a patient interface module (PIM) configured to selectively communicate with a first device or a second device different than the first device,
- wherein the first device comprises a first sensor type configured to obtain first medical data associated with a body of a patient,
- wherein the second device comprises a different, second sensor type configured to obtain second medical data associated with the body,
- wherein the PIM comprises a PIM connector,
- wherein the first device comprises a first connector configured to engage the PIM connector and the second device comprises a second connector configured to engage the PIM connector,
- wherein a pin configured to carry the power in the first connector comprises a first voltage such that the first voltage comprises the power for operation of the first sensor type to obtain the first medical data,
- wherein the pin configured to carry the power in the second connector comprises a second voltage such that the second voltage comprises the power for operation of the second sensor type to obtain the second medical data,
- wherein the PIM is configured to identify the first sensor type and the second sensor type based on the first voltage and the second voltage such that the identification is performed using the power for the operation of the first sensor type and the operation of the second sensor type.
2. The system of claim 1,
- wherein the first and second devices are intraluminal devices,
- wherein the first medical data and the second medical data are associated with a body lumen of the patient while positioned within the body lumen.
3. The system of claim 1, further comprising the first device and the second device.
4. The system of claim 3, wherein the first sensor type comprises a first type of ultrasound transducers and the second sensor type comprises a second type of ultrasound transducers, the first type of ultrasound transducers different from the second type of ultrasound transducers.
5. The system of claim 3,
- wherein the first sensor type comprises ultrasound transducers with a first center frequency, and
- wherein the second sensor type comprises ultrasound transducers with a second center frequency different from the first center frequency.
6. The system of claim 1, wherein the first connector, the second connector, and the PIM connector comprise a same quantity of pins.
7. The system of claim 1, wherein the PIM is configured to:
- identify the first sensor type when the first connector engages the PIM connector; and
- identify the second sensor type when the second connector engages the PIM connector.
8. The system of claim 1,
- wherein the PIM is configured based on the first sensor type when the PIM connector engages the first connector of the first device, and
- wherein the PIM is configured based on the second sensor type when the PIM connector engages the second connector of the second device.
9. The system of claim 1, wherein the PIM is in communication with a console.
10. The system of claim 1,
- wherein the console is configured based on the first sensor type when the PIM connector engages the first connector of the first device, and
- wherein the console is configured based on the second sensor type when the PIM connector engages the second connector of the second device.
11. The system of claim 1,
- wherein the first connector and the second connector each comprises a first pin and a second pin arranged in a physical layout,
- wherein the first pin comprises a first physical location in the physical layout and the second pin comprises a second physical location in the physical layout,
- wherein the pin configured to carry power in the first connector is the first pin and the pin configured to carry the power in the second connector is the second pin such that there is a difference between the first connector and the second connector in where the pin configured to carry the power is physically located.
12. The system of claim 11, wherein the physical layout of the first connector and the physical layout of the second connector are the same.
13. The system of claim 11, wherein the physical layout of the first connector and the physical layout of the second connector are different.
14. The system of claim 11, wherein the PIM is further configured to identify the first sensor type and the second sensor type based on the difference between the first connector and the second connector in where the pin configured to carry the power is physically located.
15. The system of claim 11,
- wherein the PIM connector comprises the first pin and the second pin arranged in the physical layout,
- wherein the first pin in the PIM connector corresponds to the first pin in the first connector and the second pin in the PIM connector corresponds to the second pin in the second connector.
16. The system of claim 11,
- wherein the first connector and the second connector each comprises a third pin and a fourth pin arranged in the physical layout,
- wherein the third pin comprises a third physical location in the physical layout and the fourth pin comprises a fourth physical location in the physical layout,
- wherein a pin configured to provide electrical ground in the first connector is the third pin and the pin configured to provide the electrical ground in the second connector is the fourth pin such that there is a difference between the first connector and the second connector in where the pin configured to provide the electrical ground is physically located.
17. The system of claim 16,
- wherein the first connector and the second connector each comprises a fifth pin and a sixth pin arranged in the physical layout,
- wherein the fifth pin comprises a fifth physical location in the physical layout and the sixth pin comprises a sixth physical location in the physical layout,
- wherein a pin configured to carry at least one of control signals or medical data in the first connector is the fifth pin and the pin configured to carry at least one of the control signals or the medical data in the sixth connector is the sixth pin such that there is a difference between the first connector and the second connector in where the pin configured to carry at least one of the control signals or the medical data is physically located.
Type: Application
Filed: Jun 24, 2024
Publication Date: Oct 17, 2024
Inventors: Joseph James HOFFMAN (SACRAMENTO, CA), Cesar PEREZ (ROSEVILLE, CA), Sherwood KANTOR (SACRAMENTO, CA)
Application Number: 18/751,414